Molecular Behavior of Human β Defensin Type 3 Embedded in Different Model Lipid Membranes
Jackson Penfield1, Tongye Shen2, George R Rucker1
1Department of Chemical Engineering, Tennessee Technological University, Cookeville, Tennessee 38505, United States.
Abstract:
Human β defensin type 3 (hBD-3) is recognized as one of the most intriguing antimicrobial peptides (AMPs) that holds the promise of solving drug resistance issues. hBD-3 can function (disruption of membrane integrity) in high salt environments, where most other AMPs fail. However, its functional mechanism at the molecular level remains elusive. To characterize its structure and dynamics during membrane crossing, long-time (a total of 57.0 μs) all-atom molecular dynamics simulations were conducted on hBD-3 monomers and dimers in both wild-type and analog (in which all three disulfide bonds are broken) forms that are embedded in four types of lipid membranes. Trajectory analysis was carried out using a statistical method─conformational dynamics analysis to calculate contact matrices and then principal component analysis (PCA) and linear discriminant analysis (LDA), in order to discern structural changes upon various physical and chemical perturbations. The result shows that the major collective coordinate primarily distinguishes between the wild-type and analog forms of hBD-3. For the hBD-3 monomer, the analog undergoes significant structural loss due to the lack of stabilizing disulfide bonds; salt exerts a nearly consistent effect on the contact degrees of freedom of the protein, whereas changes in lipid membrane composition have an insignificant effect. For the hBD-3 dimer, no consistent relationship between structure and salt concentration is indicated, and variations in the chemical composition of model bacterial membranes have a limited effect on its dynamics. These results suggest that the wild-type and analog forms of hBD-3 may employ different mechanisms when crossing bacterial membranes. The effect of salt on hBD-3 dynamics can be mitigated by the high net charge density of the protein. Additionally, the hBD-3 dimer can distinguish between model Gram-positive and Gram-negative membranes, whereas the monomer cannot. Overall, these findings provide unique insights into the structure, dynamics, and membrane-disrupting mechanism of hBD-3.
Insights
Human β defensin type 3 (hBD-3) shows promise against drug resistance, functioning in high salt. Simulations reveal distinct mechanisms for wild-type and analog forms crossing membranes, with dimers differentiating bacterial membrane types.
Area of Science:
- Biochemistry
- Molecular Biology
- Biophysics
Background:
- Human β defensin type 3 (hBD-3) is a potent antimicrobial peptide (AMP) with potential to combat drug resistance.
- hBD-3 exhibits unique functionality in high salt concentrations, unlike many other AMPs.
- The precise molecular mechanism of hBD-3's membrane interaction and disruption remains poorly understood.
Purpose of the Study:
- To elucidate the molecular structure and dynamics of hBD-3 during membrane interaction and crossing.
- To investigate the influence of disulfide bonds, salt concentration, and membrane composition on hBD-3 behavior.
- To differentiate the membrane-crossing mechanisms of wild-type hBD-3 and its analog lacking disulfide bonds.
Main Methods:
- Extensive all-atom molecular dynamics simulations (57.0 μs) were performed on hBD-3 monomers and dimers.
- Simulations included wild-type and analog (disulfide-bond-free) forms in four distinct lipid membrane environments.
- Conformational dynamics analysis, including contact matrices, principal component analysis (PCA), and linear discriminant analysis (LDA), was employed for trajectory analysis.
Main Results:
- The primary structural distinction observed was between the wild-type and analog forms of hBD-3.
- The analog monomer showed significant structural degradation without disulfide bonds; salt had a consistent effect, while membrane composition had minimal impact.
- The hBD-3 dimer displayed no clear structure-salt relationship, and membrane composition had limited influence on its dynamics. The dimer could differentiate between Gram-positive and Gram-negative membranes, unlike the monomer.
Conclusions:
- Wild-type and analog hBD-3 likely utilize different mechanisms for bacterial membrane translocation.
- The high net charge density of hBD-3 may mitigate the effects of salt on its dynamics.
- hBD-3 dimers possess a greater capacity than monomers to discriminate between different bacterial membrane types, offering insights into targeted antimicrobial strategies.
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